A methodology for regulating fuel stratification and improving fuel economy of GCI mode via double main-injection strategy
Haoqing WU, Yaoyuan ZHANG, Shijie MI, Wenbin ZHAO, Zhuoyao HE, Yong QIAN, Xingcai LU
A methodology for regulating fuel stratification and improving fuel economy of GCI mode via double main-injection strategy
Gasoline compression ignition (GCI) combustion faces problems such as high maximum pressure rise rate (MPRR) and combustion deterioration at high loads. This paper aims to improve the engine performance of the GCI mode by regulating concentration stratification and promoting fuel-gas mixing by utilizing the double main-injection (DMI) strategy. Two direct injectors simultaneously injected gasoline with an octane number of 82.7 to investigate the energy ratio between the two main-injection and exhaust gas recirculation (EGR) on combustion and emissions. High-load experiments were conducted using the DMI strategy and compared with the single main-injection (SMI) strategy and conventional diesel combustion. The results indicate that the DMI strategy have a great potential to reduce the MPRR and improve the fuel economy of the GCI mode. At a 10 bar indicated mean effective pressure, increasing the main-injection-2 ratio (Rm-2) shortens the injection duration and increases the mean mixing time. Optimized Rm-2 could moderate the trade-off between the MPRR and the indicated specific fuel consumption with both reductions. An appropriate EGR should be adopted considering combustion and emissions. The DMI strategy achieves a highly efficient and stable combustion at high loads, with an indicated thermal efficiency (ITE) greater than 48%, CO and THC emissions at low levels, and MPRR within a reasonable range. Compared with the SMI strategy, the maximum improvement of the ITE is 1.5%, and the maximum reduction of MPRR is 1.5 bar/°CA.
gasoline compression ignition / injection strategy / fuel stratification / high efficiency / high load
[1] |
ZhaoTRen ZYangK,
|
[2] |
XiaCZhaoT FangJ,
|
[3] |
KalghatgiG TÅngströmH E. Advantages of fuels with high resistance to auto-ignition in late-injection, low-temperature, compression ignition combustion. SAE Technical Papers: 2006–01–3385, 2006
|
[4] |
Dec J E. Advanced compression-ignition engines–understanding the in-cylinder processes. Proceedings of the Combustion Institute, 2009, 32(2): 2727–2742
CrossRef
Google scholar
|
[5] |
Zhang P, Xu G, Li Y.
CrossRef
Google scholar
|
[6] |
Wang H, Zhu H, Ma T.
CrossRef
Google scholar
|
[7] |
HansonRSplitter DReitzR. Operating a heavy-duty direct-injection compression-ignition engine with gasoline for low emissions. SAE Technical Paper: 2009–01–1442, 2009
|
[8] |
Kim K, Kim D, Jung Y.
CrossRef
Google scholar
|
[9] |
Ciatti S, Subramanian S N. An experimental investigation of low-octane gasoline in diesel engines. Journal of Engineering for Gas Turbines and Power, 2011, 133(9): 092802
CrossRef
Google scholar
|
[10] |
Kalghatgi G T, Kumara Gurubaran R, Davenport A.
CrossRef
Google scholar
|
[11] |
Sellnau M, Foster M, Moore W.
CrossRef
Google scholar
|
[12] |
Pan J, Li X, Yin Z.
CrossRef
Google scholar
|
[13] |
An Y, Raman V, Tang Q.
CrossRef
Google scholar
|
[14] |
TorelliRPei YZhangY,
|
[15] |
Liu H, Mao B, Liu J.
CrossRef
Google scholar
|
[16] |
Leermakers C A J, Bakker P C, Nijssen B C W.
CrossRef
Google scholar
|
[17] |
Bobi S, Kashif M, Laoonual Y. Combustion and emission control strategies for partially-premixed charge compression ignition engines: a review. Fuel, 2022, 310: 122272
CrossRef
Google scholar
|
[18] |
Jiang C X, Li Z L, Qian Y.
CrossRef
Google scholar
|
[19] |
Xia J, Zhang Q, He Z.
CrossRef
Google scholar
|
[20] |
Avulapati M M, Rayavarapu Venkata R. Experimental studies on air-assisted impinging jet atomization. International Journal of Multiphase Flow, 2013, 57: 88–101
CrossRef
Google scholar
|
[21] |
Noce T, de Morais Hanriot S, Sales L C M.
CrossRef
Google scholar
|
[22] |
Li Z, Xia J, Jiang C.
CrossRef
Google scholar
|
[23] |
Kalghatgi G, Hildingsson L, Johansson B. Low NOx and low smoke operation of a diesel engine using gasolinelike fuels. Journal of Engineering for Gas Turbines and Power, 2010, 132(9): 092803
CrossRef
Google scholar
|
[24] |
Hao H, Liu F, Liu Z.
CrossRef
Google scholar
|
[25] |
Liu J, Wang H, Zheng Z.
CrossRef
Google scholar
|
[26] |
Zeraati-Rezaei S, Al-Qahtani Y, Xu H. Investigation of hot-EGR and low pressure injection strategy for a dieseline fuelled PCI engine. Fuel, 2017, 207: 165–178
CrossRef
Google scholar
|
[27] |
Manente V, Johansson B, Tunestal P. Characterization of partially premixed combustion with ethanol: EGR sweeps, low and maximum loads. Journal of Engineering for Gas Turbines and Power, 2010, 132(8): 082802
CrossRef
Google scholar
|
[28] |
Zhang Y, Wu H, Mi S.
CrossRef
Google scholar
|
[29] |
Zou X, Liu W, Lin Z.
CrossRef
Google scholar
|
[30] |
Coratella C, Parry L, Li Y.
CrossRef
Google scholar
|
[31] |
Tang Q, Liu H, Li M.
CrossRef
Google scholar
|
[32] |
Li N, Sioutas C, Cho A.
CrossRef
Google scholar
|
[33] |
Liu H, Ma S, Zhang Z.
CrossRef
Google scholar
|
[34] |
TunerMJohansson TAulinH,
|
[35] |
ShenMTuner MJohanssonB,
|
[36] |
He T, Chen Z, Zhu L.
CrossRef
Google scholar
|
[37] |
Jiang C, Huang G, Liu G.
CrossRef
Google scholar
|
[38] |
Wei H, Liu F, Pan J.
CrossRef
Google scholar
|
[39] |
Wei H, Yu J, Zhou L. Improvement of engine performance with high compression ratio based on knock suppression using Miller cycle with boost pressure and split injection. Frontiers in Energy, 2019, 13(4): 691–706
CrossRef
Google scholar
|
[40] |
Mao B, Liu H, Zheng Z.
CrossRef
Google scholar
|
/
〈 | 〉 |